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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Broadband phonon scattering in PbTe-based materials driven near ferroelectric phase transition by strain or alloying
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Broadband phonon scattering in PbTe-based materials driven near ferroelectric phase transition by strain or alloying

机译:通过应变或合金化在铁电相变附近驱动的PbTe基材料中的宽带声子散射

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摘要

The major obstacle in the design of materials with low lattice thermal conductivity is the difficulty in efficiently scattering phonons across the entire frequency spectrum. Using first-principles calculations, we show that driving PbTe materials to the brink of the ferroelectric phase transition could be a powerful strategy to solve this problem. We illustrate this concept by applying biaxial tensile (001) strain to PbTe and its alloys with another rocksalt Ⅳ-Ⅵ material, PbSe; and by alloying PbTe with a rhombohedral Ⅳ-Ⅵ material, GeTe. This induces extremely soft optical modes at the zone center, which increase anharmonic acoustic-optical coupling and decrease phonon lifetimes at all frequencies. We predict that PbTe, Pb(Se,Te), and (Pb,Ge)Te alloys driven close to the phase transition in the described manner will have considerably lower lattice thermal conductivity than that of PbTe (by a factor of 2-3). The proposed concept may open new opportunities for the development of more efficient thermoelectric materials.
机译:具有低晶格热导率的材料设计的主要障碍是难以在整个频谱上有效分散声子。使用第一性原理计算,我们表明将PbTe材料驱动到铁电相变的边缘可能是解决此问题的有力策略。我们通过对PbTe及其合金与另一种岩石盐Ⅳ-Ⅵ材料PbSe施加双轴拉伸(001)应变来说明这一概念。然后将PbTe与菱形Ⅳ-Ⅵ材料GeTe合金化。这会在区域中心引起极其柔和的光学模式,从而增加非谐声光耦合,并缩短所有频率下的声子寿命。我们预测,以所述方式接近相变而驱动的PbTe,Pb(Se,Te)和(Pb,Ge)Te合金将具有比PbTe更低的晶格导热率(约为2-3倍) 。提出的概念可能为开发更有效的热电材料打开新的机会。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2016年第10期|104304.1-104304.8|共8页
  • 作者单位

    Department of Physics, University College Cork, College Road, Cork, Ireland ,Tyndall National Institute, Dyke Parade, Cork, Ireland;

    Department of Physics and Department of Materials, Imperial College London, London SW7 2AZ, United Kingdom;

    Department of Physics, University College Cork, College Road, Cork, Ireland ,Tyndall National Institute, Dyke Parade, Cork, Ireland;

    Tyndall National Institute, Dyke Parade, Cork, Ireland;

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